Drew Bennett W F, Fox Stephen J, Sun Delin, Maupin C Mark
Physical and Life Sciences Directorate, Lawrence Livermore National Laboratory, Livermore, CA 94550, USA.
Procter and Gamble, Reading Tech Center, 452 Basingstoke Rd, Reading RG2 0RX, UK.
Membranes (Basel). 2022 Mar 22;12(4):350. doi: 10.3390/membranes12040350.
Characterizing the biophysical properties of bacterial membranes is critical for understanding the protective nature of the microbial envelope, interaction of biological membranes with exogenous materials, and designing new antibacterial agents. Presented here are molecular dynamics simulations for two cationic quaternary ammonium compounds, and the anionic and nonionic form of a fatty acid molecule interacting with a bacterial inner membrane. The effect of the tested materials on the properties of the model membranes are evaluated with respect to various structural properties such as the lateral pressure profile, lipid tail order parameter, and the bilayer's electrostatic potential. Conducting asymmetric loading of molecules in only one leaflet, it was observed that anionic and cationic amphiphiles have a large impact on the membrane's electrostatic potential and lateral pressure profile as compared to a symmetric distribution. Nonintuitively, we find that the cationic and anionic molecules induce a similar change in the electrostatic potential, which points to the complexity of membrane interfaces, and how asymmetry can induce biophysical consequences. Finally, we link changes in membrane structure to the rate of electroporation for the membranes, and again find a crucial impact of introducing asymmetry to the system. Understanding these physical mechanisms provides critical insights and viable pathways for the rational design of membrane-active molecules, where controlling the localization is key.
表征细菌膜的生物物理特性对于理解微生物包膜的保护性质、生物膜与外源物质的相互作用以及设计新型抗菌剂至关重要。本文展示了两种阳离子季铵化合物以及一种脂肪酸分子的阴离子和非离子形式与细菌内膜相互作用的分子动力学模拟。针对各种结构特性,如横向压力分布、脂质尾序参数和双层膜的静电势,评估了测试材料对模型膜性质的影响。通过仅在一个小叶中进行分子的不对称加载,观察到与对称分布相比,阴离子和阳离子两亲物对膜的静电势和横向压力分布有很大影响。非直观地,我们发现阳离子和阴离子分子在静电势上引起类似的变化,这表明膜界面的复杂性以及不对称性如何引发生物物理后果。最后,我们将膜结构的变化与膜的电穿孔速率联系起来,再次发现引入不对称性对系统有至关重要的影响。理解这些物理机制为合理设计膜活性分子提供了关键见解和可行途径,其中控制定位是关键。